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Updated: Jun 17, 2026

Characterization of Electrode Materials for Lithium Ion and Sodium Ion Batteries Using Synchrotron Radiation Techniques
Published on: November 11, 2013
Aluminum doping-induced α/γ-MnO2 heterophase and oxygen vacancy defect engineering for high-performance aqueous
Shiyan Wang1, Jie Feng1, Chengzu Li1
1College of Materials and Chemical Engineering, College of Mechanical and Power Engineering, Key Laboratory of Inorganic Nonmetallic Crystalline and Energy Conversion Materials, China Three Gorges University, Yichang, 443002, China. mksxh@163.com.
Abstract:
Developing cost-effective aqueous rechargeable zinc-manganese batteries with high capacity and long cycle life remains a challenge. In this study, a nanorod-structured Al-doped MnO2 cathode material (PAMO) containing α-MnO2/γ-MnO2 heterophases and abundant oxygen vacancies was prepared through a chemical bath deposition method incorporating polyethylene glycol (PEG) modification. The large specific surface area and abundant pore structure of PAMO facilitate electrolyte permeation and diffusion. Defects at the α/γ-MnO2 heterophase boundary expose numerous active sites, increase the electrochemically active surface area, and enhance diffusion-controlled capacity. The heterogeneous phase interface and abundant oxygen vacancies serve as shortcut pathways for ion diffusion, facilitating rapid ion transport and accelerating electrode reaction kinetics. Al3+ doping reduces the average oxidation state of Mn after cycling, thereby suppressing the dissolution of MnO2. Therefore, the PAMO-based zinc-ion battery exhibits a low redox polarization voltage, a high specific capacity (422 mAh g-1 at 0.1 A g-1), excellent high-rate charge/discharge performance, and long cycle durability. This work pioneers a facile approach for the development of cathode materials for large capacity and long cycle life zinc-manganese batteries through dopant-induced heterophase engineering.

